Constructivism’s New Clothes: The Trivial, the Contingent, and a Progressive Research Programme into the Learning of Science

Foundations of Chemistry - Tập 8 Số 2 - Trang 189-219 - 2006
Keith S. Taber1
1Faculty of Education, University of Cambridge, Cambridge, United Kingtem

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I.O. Abimbola, The problem of terminology in the study of student conceptions in science. Science Education 72 (1988) 175-184

B Andersson, The experiential gestalt of causation: a common core to pupils’ preconceptions in science. European Journal of Science Education 8 (1986) 155-171

C.R. Ault, J.D. Novak and D.B. Gowin, Constructing Vee Maps for Clinical Interviews on Molecule Concepts. Science Education 68 (1984) 441-462

G. Bachelard. The Philosophy of No: a philosophy of the scientific mind. New York: Orion Press (1968) (original French edition published in 1940).

V. Barker. Beyond appearances: students’ misconceptions about basic chemical ideas, A report prepared for the Royal Society of Chemistry, London: Education Division, Royal Society of Chemistry (2000). Available on LearnNet at www.chemsoc.org/LearnNet.

B. Bell, Interviewing: a technique for assessing science knowledge. In: M. Glynn Shawn and R Duit (eds.) Learning Science in the Schools: Research Reforming Practice. Mahwah NJ: Lawrence Erlbaum Associates (1995) pp. 347-364

B. Bell, A. Jones and M. Car, The development of the recent National new Zealand Science Curriculum. Studies in Science Education 26 (1995) 73-105

J. Michell Beld, Constructing a collaboration: a conversation with Egon G. Guba and Y.S. Lincoln. International Journal of Qualitative Studies in Education 7 (1994) 99-115

P. Black. Introduction to P. Adey, with J. Bliss, J. Head and M. Shayer, (Eds.), Adolescent Development and School Science, pp. 1–4. Lewes (East Sussex): The Falmer Press, 1989.

P.J. Black, and A.M. Lucas (Eds.), Children’s Informal Ideas in Science. London: Routledge, 1993.

P. Carmichael, R. Driver, B. Holding, I. Phillips, D. Twigger, and M. Watts, Research on Students’ Conceptions in Science: A Bibliography, Children’s Learning in Science Research Group, Centre for Studies in Science and Mathematics Education, University of Leeds, 1990. (plus addenda, 1991, 1992).

M.T.H. Chi, Conceptual change within and across ontological categories: examples from learning and discovery in science. In: R.N. Giere (ed.) Cognitive Models in Science.. Minneapolis: University of Minnesota Press (1992) pp. 129-186

G. Claxton. Minitheories: a preliminary model for learning science, Chapter 3 of Paul J. Black and A.M. Lucas (Eds.), Children’s Informal Ideas in Science., pp. 45–61. London: Routledge, 1993.

A Cromer, Connected Knowledge: Science, Philosophy and Education. Oxford: Oxford University Press (1997).

R. Driver, The Pupil as Scientist?. Milton Keynes: Open University Press (1983).

R. Driver. Students’ Conceptions and the Learning of Science. International Journal of Science Education, 11: (special issue), 481–490, 1989.

R. Driver and J. Easley, Pupils and Paradigms: A Review of Literature Related to Concept Development in Adolescent Science Students. Studies in Science Education 5 (1978) 61-84

R. Driver and G. Erickson, Theories-in-Action: Some Theoretical and Empirical Issues in the Study of Students’ Conceptual Frameworks in Science. Studies in Science Education 10 (1983) 37-60

Children’s Ideas in Science. Milton Keynes: Open University Press (1985a).

R. Driver, E. Guesne, and A. Tiberghien. Some Features of Children’s Ideas and Their Implications for Teaching, in Driver, et al., 1985a, 193–201, 1985b.

R. Driver and V. Oldham, A constructivist approach to curriculum development in science. Studies in Science Education 13 (1986) 105-122

R. Driver, A. Squires, P. Rushworth and V. Wood-Robinson, Making Sense of Secondary Science: research into children’s ideas. London: Routledge (1994a).

R. Driver, J. Leach, P. Scott and C. Wood-Robinson, Young people’s understanding of science concepts: implications of cross-age studies for curriculum planning. Studies in Science Education 24 (1994b) 75-100

R. Driver, H. Asoko, J. Leach, E. Mortimer and P. Scott, Constructing scientific knowledge in the classroom.. Oxford: Paper Presented at the British Educational Research Association (1994c).

Philosophy of Science, Cognitive Psychology, and Educational Theory and Practice. Albany, NY: State University of New York Press (1992).

D. Edwards and N. Mercer, Common Knowledge: The Development of Understanding in the Classroom. London: Routledge (1987).

G. Erickson Research programmes and the student science learning literature. In R. Millar, J. Leach, and J. Osborne (Eds.), Improving Science Education: the Contribution of Research, Buckingham UK: Open University Press, 2000.

The Content of Science: A Constructivist Approach to its Teaching and Learning. London: Falmer Press (1994).

D. Fowler and D.W. Brooks, Connectivism. Journal of Chemical Education 68 (1991) 748-751

K.J. Gergen, An Invitation to Social Construction. London: SAGE Publications (1999).

J.K. Gilbert, The development of educational research in the physical sciences in some European countries. In: H.-J. Schmidt (ed.) Problem Solving and Misconceptions in Chemistry and Physics. Dortmund, Germany: International Council of Associations for Science Education (1994) pp. 15-28

J.K. Gilbert, R.J. Osborne and P.J. Fensham, Children’s Science and its Consequences for Teaching. Science Education 66 (1982) 623-633

J.K. Gilbert and D.J. Swift, Towards a Lakatosian Analysis of the Piagetian and Alternative Conceptions Research Programs. Science Education 69 (1985) 681-696

J.K. Gilbert and D.M. Watts, Concepts, misconceptions and alternative conceptions: changing perspectives in science education. Studies in Science Education 10 (1983) 61-98

E. von Glasersfeld, Cognition, Construction of Knowledge, and Teaching. Synthese 80 (1989) 121-140

E. Glasersfeld von, Questions and answers about radical constructivism. In: Kenneth Tobin (ed.) The Practice of Constuctivism in Science Education.. Hillsdale New Jersey: Larwence Erlbaum Associates (1993) pp. 23-38

R.G. Good, J.H. Wandersee and John St. Julien, Cautionary notes on the appeal of the new “ism” (constructivism) in science education. In: K. Tobin (ed.) The Practice of Constructivism in Science Education. Hillsdale New Jersey: Larwence Erlbaum Associates (1993) pp. 71-87

D. Hammer Misconceptions or p-prims: how might alternative perspectives of cognitive structure influence instructional perceptions and intentions? Paper Presented at the Conference of the American Educational Research Association, April 1996.

W. Harlen, Effective Teaching of Science: A Review of Research. Edinburgh: Scottish Council for Research in Education (1999).

A.G. Harrison and D.F. Treagust, Learning About Atoms, Molecules, and Chemical Bonds: A Case Study of Multiple-Model Use in Grade 11 Chemistry. Science Education 84 (2000) 352-381

M.G.A’B. Hewson, The role of intellectual environment in the origins of conceptions: an exploratory study. In: L.H.T. West and A. Leon Pines (eds.) Cognitive Structure and Conceptual Change.. London: Academic Press Inc. (1985) pp. 153-161

P.W. Hewson and M.G. Hennessey. Making status explicit: a case study of conceptual change. In R. Duit, F. Goldberg and H. Niedderer (eds) (1992) Research in Physics Learning: Theoretical Issues and Empirical Studies, pp. 176–187, Kiel: I.P.N. (Institut für die Pädagogik der Naturwissenschraften), 1992.

C.J. Howe, Conceptual Structure in Childhood and Adolescence: The Case of Everyday Physics. London: Routledge (1998).

E.W. Jenkins, Research in Science Education: Time for a Health Check?. Studies in Science Education 35 (2000) 1-25

P. Johnson, Progression in Children’s Understanding of a ‘Basic’ Particle Theory: A Longitudinal Study. International Journal of Science Education 20 (1998) 393-412

P.M. Johnson and R Gott, Constructivism and Evidence from Children’s Ideas. Science Education 80 (1996) 561-577

A.H. Johnstone, Some Messages for Teachers and Examiners: An Information Processing Model, Research in Assessment VII: Assessment of Chemistry in Schools. London: Royal Society of Chemistry Education Division (1989).

A.H. Johnstone, Why is Science Difficult to Learn? Things are seldom what they seem. Journal of Computer Assisted Learning 7 (1991) 75-83

A.H. Johnstone, Teaching of Chemistry – Logical or Psychological?. Chemistry Education: Research and Practice in Europe 1 (2000) 9-15

G. Kelly. A Theory of Personality: The Psychology of Personal Constructs, New York: W.W. Norton & Company (taken from The Psychology of Personal Constructs, first published 1955), 1963.

V. Kind and K.S. Taber, Teaching School Science. Falmer: Routledge (2005).

I. Lakatos (1970) Falsification and the methodology of scientific research programmes. In I. Lakatos and A. Musgrove (Eds.), Criticism and the Growth of Knowledge, Proceedings of the International Colloquium in the Philosophy of Science, London, 1965, Volume 4, pp. 91–196. Cambridge: Cambridge University Press, 1970.

I. Lakatos. The Methodology of Scientific Research Programmes, Philosophical Papers, Volume 1, Cambridge: Cambridge University Press, 1978.

I. Lakatos. (1978{1973}) Science and Pseudoscience, in Lakatos (1978), pp. 1–7.

I. Lakatos. (1978{1974}) Popper on Demacraction and Induction, in Lakatos (1978), pp. 139–167.

I. Lakatos and Zahar (1978{1976}) Why Did Copernicus’s Research Programme Supercede Ptolemy’s?, in Lakatos (1978), pp. 168–192.

J. Leach and P. Scott, Designing and Evaluating Science Teaching Sequences: An Approach Drawing Upon the Concept of Learning Demand and a Social Constructivist Perspective on Learning. Studies in Science Education 38 (2002) 115-142

M.R. Matthews, Constructivism and Science Education: Some Epistemological Problems. Journal of Science Education and Technology 2 (1993) 359-370

M.R. Matthews, Science Teaching: The Role of History and Philosophy of Science. London: Routledge (1994).

Constructivism in Science Education: A Philosophical Examination. Dordrecht: Kluwer Academic Publishers (1998).

R. Millar, Constructive Criticisms. International Journal of Science Education 11 (1989) 587-596

Teaching Science for Understanding: A human constructivist view. San Diego California: Academic Press (1998).

E.F. Mortimer, Conceptual Change or Conceptual Profile Change?. Science and Education 4 (1995) 267-285

J. Ogborn, G. Kress, I. Martins and K. McGillicuddy, Explaining Science in the Classroom. Buckingham: Open University Press (1996).

R. Osborne and P. Freyberg, Learning in Science: The Implications of Children’s Science. Auckland: Heinemann (1985).

J. Petri and H. Niedderer, A Learning Pathway in High-school Level Quantum Atomic Physics. International Journal of Science Education 20 (1998) 1075-1088

J. Piaget. Psychology and Epistemology: Towards a Theory of Knowledge (translated from the French by P.A. Wells), Harmondsworth: Penguin (original French edition, 1970), 1972.

J. Piaget. The Child’s Conception of The World (tr. J & A Tomlinson), St. Albans, U.K.: Granada (first published in Great Britain by Routledge & Kegan Paul, 1929), 1973.

D.C. Phillips, Philosophy, Science and Social Enquiry: Contemporary Methodological Controversies in Social Science and Related Applied Fields of Research. Oxford: Pergamon Press (1987).

D.C. Phillips, Coming to Grips with Radical Social Constructivisms. Science & Education 6 (1997) 85-104

M. Pope and P. Denicolo, Intuitive Theories – A Researcher’s Dilemma: Some Practical Methodological Implications. British Educational Research Journal 12 (1986) 153-166

M. Pope and J. Gilbert, Personal Experience and the Construction of Knowledge in Science. Science Education 67 (1983) 193-203

J. Potter, Representing Reality: Discourse, rhetoric and social construction. London: SAGE Publications (1996).

W-M. Roth. Artificial Neural Networks for Modeling Knowing and Learning in Science. Journal of Research in Science Teaching 37(1): 63–80, 2000.

E.R. Scerri. Philosophical Confusion in Chemical Education Research. Journal of Chemical Education 80(20): 468–474, 2003.

P.H. Scott. Pathways in learning science: a case study of the development of one student’s ideas relating to the structure of matter. In R. Duit, F. Goldberg, H. Niedderer (Eds.), Research in Physics Learning: theoretical issues and empirical studies, pp. 203–224. Kiel: I.P.N. (Institut für die Pädagogik der Naturwissenschraften), 1992.

P. Scott, Teacher Talk and Meaning Making in Science Classrooms: A Review of Studies from a Vygotskian Perspective. Studies in Science Education 32 (1998) 45-80

H. Schwedes and D. Schmidt. Conceptual change: a case study and theoretical comments. In R. Duit, F. Goldberg, H. Niedderer (Eds.), Research in Physics Learning: Theoretical Issues and Empirical Studies, pp. 188–292, Kiel: I.P.N. (Institut für die Pädagogik der Naturwissenschraften), 1992.

J. Solomon, Social Influences on the Construction of Pupils’ Understanding of Science. Studies in Science Education 14 (1987) 63-82

J. Solomon, Getting to Know about Energy – in School and Society. London: Falmer Press (1992).

J. Solomon, Four frames for a field. In: P.J. Black and A.M. Lucas (eds.) Children’s Informal Ideas in Science. London: Routledge (1993a) pp. 1-19

J. Solomon, The social construction of children’s scientific knowledge. In: P.J. Black and A.M. Lucas (eds.) Children’s Informal Ideas in Science. London: Routledge (1993b) pp. 85-101

J. Solomon, The Rise and Fall of Constructivism. Studies in Science Education 23 (1994) 1-19

W.A. Suchting, Constructivism Deconstructed. Science and Education 1 (1992) 223-254

K.S. Taber, Development of Student Understanding: A Case Study of Stability and Lability in Cognitive Structure. Research in Science and Technological Education 13 (1995) 87-97

K.S. Taber, An Alternative Conceptual Framework From Chemistry Education. International Journal of Science Education 20 (1998) 597-608

K.S. Taber, Case Studies and Generalisability – Grounded Theory and Research in Science Education. International Journal of Science Education 22 (2000a) 469-487

K.S. Taber, Multiple Frameworks?: Evidence of Manifold Conceptions in Individual Cognitive Structure. International Journal of Science Education 22 (2000b) 399-417

K.S. Taber, Shifting Sands: A Case Study of Conceptual Development as Competition Between Alternative Conceptions. International Journal of Science Education 23 (2001a) 731-753

K.S. Taber, Building the Structural Concepts of Chemistry: Some Considerations From Educational Research. Chemistry Education: Research and Practice in Europe 2 (2001b) 123-158

K.S Taber, Chemical Misconceptions – Prevention, Diagnosis and Cure. London: Royal Society of Chemistry (2002).

K.S. Taber, The Atom in the Chemistry Curriculum: Fundamental Concept, Teaching Model or Epistemological Obstacle?. Foundations of Chemistry 5 (2003) 43-84

K. Tobin, Referents for Making Sense of Science Teaching. International Journal of Science Education 15 (1993a) 241-254

The Practice of Constructivism in Science Education. Hillsdale New Jersey: Larwence Erlbaum Associates (1993b).

R. Tytler, Children’s Conceptions of Air Pressure: Exploring the Nature of Conceptual Change. International Journal of Science Education 20 (1998) 929-954

M. Watts, From Concept Maps to Curriculum Signposts. Physics Education 23 (1988) 74-79

D.M. Watts and J. Gilbert, Enigmas in School Science: Students’ Conceptions for Scientifically Associated Words. Research in Science and Technological Education 1 (1983) 161-171

D.M. Watts and M.L. Pope. A Lakatosian View of the Young Personal Scientist, paper to the British Conference on Personal Construct Psychology, Manchester (UMIST), September 1982.

M. Watts and K.S. Taber. An Explanatory Gestalt of Essence: Students’ Conceptions of the ‘Natural’ in Physical Phenomena. International Journal of Science Education 18(8), 939–954, 1996.

R.E. Yager, Constructivism and the learning of science. In: M. Glynn Shawn and R Duit (eds.) (1995) Learning Science in the Schools: Research Reforming Practice. Mahwah, N.J.: Lawrence Erlbaum Associates (1995) pp. 35-58